Azure Databricks Engineer
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Role details
Tech stack
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Job description
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Design, develop, and maintain scalable and reliable data processing solutions using Azure Databricks.
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Build and manage robust batch and streaming data pipelines within Databricks environments.
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Develop and optimize data transformation and processing solutions using Python, PySpark, and SQL.
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Design and optimize data models to support scalable processing, performance, and reliability.
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Manage multiple parallel data processing workflows and shared data sources efficiently.
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Implement and maintain CI/CD pipelines using Azure DevOps and YAML-based configurations.
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Apply Infrastructure as Code (IaC) using ARM/Bicep for deployment and infrastructure automation.
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Monitor, troubleshoot, and optimize data processing workloads and Databricks environments.
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Collaborate with cross-functional engineering and business teams to deliver reliable and maintainable data solutions.
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Contribute to Agile development practices and continuously improve engineering standards, system stability, and performance.
Requirements
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Strong hands-on experience with Azure Databricks as a core data engineering platform.
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Strong proficiency in Python, PySpark, and SQL.
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Hands-on experience developing batch and streaming data pipelines.
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Experience with data modeling, transformation, and optimization within Databricks environments.
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Good understanding of Azure cloud services relevant to data engineering.
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Experience with Azure DevOps, CI/CD, and YAML-based pipeline configurations.
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Hands-on experience with Infrastructure as Code, particularly ARM/Bicep.
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Experience working in Agile engineering and delivery environments.
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Understanding of modern cloud-based data architectures and end-to-end data engineering solutions.
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Strong communication, collaboration, troubleshooting, and problem-solving skills.
You Should Possess the Ability to:
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Build scalable, high-performance, and reliable data processing solutions using Azure Databricks.
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Develop efficient PySpark and SQL-based data transformations.
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Design and manage complex batch and streaming workloads.
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Optimize data pipelines, processing performance, and resource utilization.
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Troubleshoot complex data engineering issues and improve system reliability.
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